Title :
Design and Fabrication Experience With
Block-Type Coils for High Field Accelerator Dipoles
Author :
Cheng, D.W. ; Caspi, S. ; Dietderich, D.R. ; Felice, H. ; Ferracin, P. ; Hafalia, A.R. ; Marchevsky, M. ; Prestemon, S. ; Sabbi, G.
Author_Institution :
Lawrence Berkeley Nat. Lab., Berkeley, CA, USA
Abstract :
For the last several years, the Lawrence Berkeley National Laboratory has been engaged in the development of Nb3Sn block-type accelerator quality dipoles with operational bore fields in the range of 13-15 T. The magnet design features two coil modules wound around a titanium-alloy pole with a clear aperture of 43 mm. The latest model, HD3, incorporates several new features to overcome the limitations observed in previous tests. Among the key objectives are improved conductor positioning at critical transitions between straight section and end regions, and a more robust fabrication process. To date, several coils have been fabricated and we describe their performance with respect to these design and process changes. Additionally, we present our experience in design and fabrication of a new generation of magnet coils that introduce a two-piece pole design that allows for cable growth during reaction. These experiences are intended to form the basis for scale-up to longer lengths and larger aperture magnets.
Keywords :
niobium compounds; superconducting coils; superconducting magnets; Lawrence Berkeley National Laboratory; Nb3Sn; block type coil; conductor positioning; high field accelerator dipoles; magnet design; magnetic flux density 13 T to 15 T; titanium alloy pole; two piece pole design; Cable insulation; Coils; Fabrication; Magnetomechanical effects; Niobium-tin; Superconducting magnets; $hbox{Nb}_{3}hbox{Sn}$ ; Dipole magnet;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2013.2246811